arXiv Analytics

Sign in

arXiv:quant-ph/0507061AbstractReferencesReviewsResources

Differential atom interferometry beyond the standard quantum limit

K. Eckert, P. Hyllus, D. Bruss, U. V. Poulsen, M. Lewenstein, C. Jentsch, T. Mueller, E. M. Rasel, W. Ertmer

Published 2005-07-06, updated 2006-01-19Version 2

We analyze methods to go beyond the standard quantum limit for a class of atomic interferometers, where the quantity of interest is the difference of phase shifts obtained by two independent atomic ensembles. An example is given by an atomic Sagnac interferometer, where for two ensembles propagating in opposite directions in the interferometer this phase difference encodes the angular velocity of the experimental setup. We discuss methods of squeezing separately or jointly observables of the two atomic ensembles, and compare in detail advantages and drawbacks of such schemes. In particular we show that the method of joint squeezing may improve the variance by up to a factor of 2. We take into account fluctuations of the number of atoms in both the preparation and the measurement stage, and obtain bounds on the difference of the numbers of atoms in the two ensembles, as well as on the detection efficiency, which have to be fulfilled in order to surpass the standard quantum limit. Under realistic conditions, the performance of both schemes can be improved significantly by reading out the phase difference via a quantum non-demolition (QND) measurement. Finally, we discuss a scheme using macroscopically entangled ensembles.

Comments: 10 pages, 5 figures; eq. (3) corrected and other minor changes
Journal: Phys. Rev. A 73, 013814 (2006)
Categories: quant-ph
Related articles: Most relevant | Search more
arXiv:quant-ph/0702258 (Published 2007-02-27, updated 2007-11-08)
Entanglement of macroscopic test masses and the Standard Quantum Limit in laser interferometry
arXiv:quant-ph/0204017 (Published 2002-04-04)
Surpassing the standard quantum limit for optical imaging using non-classical multimode light
arXiv:1504.03250 [quant-ph] (Published 2015-04-13)
Decoherence from classically undetectable sources: A standard quantum limit for diffusion